Efficient and accurate binding free energy calculation of Aβ9-40 protofilament propagation.

IF 2.8 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Proteins-Structure Function and Bioinformatics Pub Date : 2025-08-01 Epub Date: 2024-03-14 DOI:10.1002/prot.26683
Christina V Frost, Nadine Schwierz, Martin Zacharias
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引用次数: 0

Abstract

Self-assembled aggregation of peptides and proteins into regular amyloid fibrils is associated with several neurodegenerative diseases. In case of Alzheimer's disease proteolytic cleavage products of the amyloid precursor protein form pathological amyloid-beta fibrils in a nucleation and propagation phase. The molecular details and thermodynamic driving forces of amyloid formation are not well understood, but are of high relevance for potential pharmacological interference. We used atomistic binding free energy simulations to calculate the free energy of protofilament propagation by an additional Aβ9-40 peptide binding to the protofilament tip. It requires sampling of relevant conformational transitions which is challenging since the monomeric Aβ9-40 peptide is intrinsically disordered. However, the convergence of umbrella simulations can be enhanced by applying additional restraining potentials on the axial, orientational and conformational degrees of freedom. The improved convergence leads to a much closer agreement with experimental binding free energy data compared to unrestrained umbrella sampling. Moreover, the restraining approach results in a separation of contributions to the total binding free energy. The calculated contributions indicate that the free energy change associated with the restriction of conformational freedom upon propagation makes a large opposing contribution of higher magnitude than the total binding free energy. Finally, optimization of the approach leads to further significant reduction of the computational demand which is crucial for systematic studies on mutations, denaturants and inhibitors in the fibril propagation step.

高效准确地计算 Aβ9-40 原丝传播的结合自由能。
肽和蛋白质自组装成规则的淀粉样纤维与多种神经退行性疾病有关。在阿尔茨海默氏症的病例中,淀粉样前体蛋白的蛋白水解裂解产物在成核和扩散阶段形成病理性淀粉样-β纤维。淀粉样蛋白形成的分子细节和热力学驱动力尚不十分清楚,但与潜在的药理干预高度相关。我们利用原子结合自由能模拟计算了与原丝顶端结合的额外 Aβ9-40 肽的原丝传播自由能。这需要对相关构象转变进行取样,而由于单体 Aβ9-40 肽本身是无序的,因此这具有挑战性。然而,通过对轴向、方向和构象自由度施加额外的约束势,可以增强伞状模拟的收敛性。与不受约束的伞状取样相比,收敛性的提高使其与实验结合自由能数据更加接近。此外,约束方法还导致了对总结合自由能贡献的分离。计算得出的贡献表明,在传播过程中与限制构象自由度相关的自由能变化具有很大的反向贡献,其量级高于总结合自由能。最后,该方法的优化进一步显著降低了计算需求,这对于在纤维传播步骤中对突变、变性剂和抑制剂进行系统研究至关重要。
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来源期刊
Proteins-Structure Function and Bioinformatics
Proteins-Structure Function and Bioinformatics 生物-生化与分子生物学
CiteScore
5.90
自引率
3.40%
发文量
172
审稿时长
3 months
期刊介绍: PROTEINS : Structure, Function, and Bioinformatics publishes original reports of significant experimental and analytic research in all areas of protein research: structure, function, computation, genetics, and design. The journal encourages reports that present new experimental or computational approaches for interpreting and understanding data from biophysical chemistry, structural studies of proteins and macromolecular assemblies, alterations of protein structure and function engineered through techniques of molecular biology and genetics, functional analyses under physiologic conditions, as well as the interactions of proteins with receptors, nucleic acids, or other specific ligands or substrates. Research in protein and peptide biochemistry directed toward synthesizing or characterizing molecules that simulate aspects of the activity of proteins, or that act as inhibitors of protein function, is also within the scope of PROTEINS. In addition to full-length reports, short communications (usually not more than 4 printed pages) and prediction reports are welcome. Reviews are typically by invitation; authors are encouraged to submit proposed topics for consideration.
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